4.8 Article

Electronic structure, optical properties, and lattice dynamics in atomically thin indium selenide flakes

期刊

NANO RESEARCH
卷 7, 期 10, 页码 1556-1568

出版社

TSINGHUA UNIV PRESS
DOI: 10.1007/s12274-014-0516-x

关键词

indium selenide; two-dimensional flakes; micro-Raman spectroscopy; micro-photoluminescence; electronic structure

资金

  1. Spanish Government [FIS2012-37549-C05-05, MAT2011-24757, CSD2007-00041, MAT2012-38664-C02-02, CSD2007-00045, TEC2011-29120-C05-01/-05]
  2. Comunidad Valenciana Government [PROMETEO/2009/074]
  3. Royal Society
  4. European Research Council
  5. Engineering and Physical Sciences Research Council (UK)
  6. Juan de la Cierva Program [JCI-2011-10686]
  7. EPSRC [EP/I023186/1] Funding Source: UKRI
  8. Engineering and Physical Sciences Research Council [EP/I023186/1] Funding Source: researchfish

向作者/读者索取更多资源

The progressive stacking of chalcogenide single layers gives rise to two-dimensional semiconducting materials with tunable properties that can be exploited for new field-effect transistors and photonic devices. Yet the properties of some members of the chalcogenide family remain unexplored. Indium selenide (InSe) is attractive for applications due to its direct bandgap in the near infrared, controllable p- and n-type doping and high chemical stability. Here, we reveal the lattice dynamics, optical and electronic properties of atomically thin InSe flakes prepared by micromechanical cleavage. Raman active modes stiffen or soften in the flakes depending on which electronic bonds are excited. A progressive blue-shift of the photoluminescence peaks is observed for decreasing flake thickness (as large as 0.2 eV for three single layers). First-principles calculations predict an even larger increase in the bandgap, 0.40 eV, for three single layers, and as much as 1.1 eV for a single layer. These results are promising from the point of view of the versatility of this material for optoelectronic applications at the nanometer scale and compatible with Si and III-V technologies.

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